Vehicle drive systems
The vehicle drive system addresses oil supply issues by using hydraulic pressure from rotating bodies to maintain oil circulation and prevent performance degradation without increasing parts or costs.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- AISIN CORP
- Filing Date
- 2024-01-25
- Publication Date
- 2026-05-19
AI Technical Summary
Existing vehicle drive devices face issues with oil supply to oil passages due to vehicle posture changes, leading to performance degradation, and adding an oil pump increases parts and costs.
A vehicle drive system with a case that includes an accommodation chamber, a power transmission mechanism, and an oil passage structure, utilizing hydraulic pressure from rotating bodies to pump oil to desired passages without an oil pump.
The system effectively circulates oil within the case, ensuring consistent oil supply to oil passages regardless of vehicle posture, reducing the need for additional components and costs.
Smart Images

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Abstract
Description
Technical Field
[0001] The present disclosure relates to a vehicle drive device.
Background Art
[0002] There is known a vehicle drive device that puts the oil scraped up by a gear into a catch tank and supplies the oil stored in the catch tank to the axial oil passage of a rotating electric machine.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] By the way, when the case of the vehicle drive device inclines according to the posture of the vehicle, the oil passages such as the axial oil passage also incline accordingly. In this regard, in the prior art as described above, depending on the posture of the vehicle, the oil in the catch tank may not be able to climb the oil passage inclined with respect to the horizontal plane. In this case, there arises a problem that the intended system performance of the vehicle drive device cannot be obtained. On the other hand, if an oil pump is provided, such a problem can be solved, but an increase in the number of parts and cost becomes an issue.
[0005] Therefore, on one side, while having a structure that circulates the oil scraped up by a gear in the case, the present disclosure aims to reduce the possibility that oil cannot be supplied to a desired oil passage due to the posture of the vehicle.
Means for Solving the Problems
[0006] On one side, a case that forms an accommodation chamber through which oil flows, a power transmission mechanism that is disposed in the accommodation chamber and can transmit power from a power source to wheels, The case comprises an oil passage structure formed in at least a portion thereof, The power transmission mechanism includes a rotating body that rotates around an axis during power transmission. The rotating body has an outer circumference that can scrape up the oil that accumulates below the containment chamber by rotation, The oil passage structure includes a first oil chamber into which oil is scooped up by the rotation of the rotating body, and a first oil passage communicating with the first oil chamber. A vehicle drive system is provided in which the oil in the first oil chamber is pumped to the first oil passage based on the hydraulic pressure generated when new oil enters the first oil chamber due to the rotation of the rotating body. [Effects of the Invention]
[0007] In one respect, the present disclosure provides a structure that circulates the oil scraped up by the gears within the case, while reducing the possibility that oil may not be supplied to the desired oil passage due to the vehicle's posture. [Brief explanation of the drawing]
[0008] [Figure 1] This is a schematic top view diagram showing the mounting configuration of the vehicle's drive system. [Figure 2] This is a cross-sectional view of a vehicle drive system. [Figure 2A] This is a skeleton diagram showing a vehicle drive system. [Figure 3] This is a schematic top view showing a vehicle drive system. [Figure 4] This is a schematic side view showing the vehicle drive system as viewed from the axial second side A2. [Figure 5] This is a schematic side view showing the differential cover member as seen from side A1. [Figure 6] This diagram schematically shows the state when the axle oil passage is tilted in the lateral direction depending on the lateral tilt of the vehicle, and is an enlarged view of Q6 in Figure 2. [Figure 7] This is a schematic diagram illustrating the principle of hydraulic pressure generation for the oil in the pressurized oil chamber, and is an enlarged view of Q7 in Figure 4. [Figure 8]This is an explanatory diagram of the oil flow through the pressurized oil passage, and Figure 2 schematically shows the corresponding oil flows with arrows. [Figure 9] This is a schematic side view showing the vehicle's drive system as seen from side A1. [Figure 10] This is a schematic side view showing a vehicle drive system as seen from the side. [Figure 11] This is a schematic side view showing the motor cover member as viewed from the second axial side A2. [Figure 12] This is a schematic side view showing the motor cover member as viewed from the first axial side A1. [Modes for carrying out the invention]
[0009] The following describes each embodiment in detail with reference to the attached drawings. Note that the dimensional ratios in the drawings are merely examples and are not exhaustive. Furthermore, some shapes and other details in the drawings may be exaggerated for illustrative purposes.
[0010] In the following explanation, the Y direction (see Figure 4, etc.) corresponds to the vertical direction of the vehicle drive unit 100 in its operating state, that is, the vertical direction when the vehicle drive unit 100 is positioned in its operating orientation. The Y1 side and Y2 side correspond to the upper and lower sides along the Y direction. Note that the vertical direction does not necessarily have to be parallel to the vertical direction; it is sufficient if it is predominantly composed of a vertical component. Furthermore, the direction of each component in the following explanation represents the direction when they are assembled to the vehicle drive unit 100. In addition, terms related to the dimensions, arrangement direction, arrangement position, etc., of each component are concepts that include differences due to errors (errors that are within the range that can be tolerated in manufacturing). The A direction (see Figure 2, etc.) corresponds to the axial direction, and in Figure 2, etc., the A1 side and A2 side along the A direction are defined. The A direction does not necessarily have to be in the horizontal plane; it is sufficient if it is predominantly composed of a horizontal component. Furthermore, the X direction (see Figure 3, etc.) is perpendicular to both the A and Y directions, and Figure 3, etc., defines the X1 side and the X2 side along the X direction.
[0011] In this specification, "driving connection" refers to a state in which two rotating elements are connected so as to be able to transmit a driving force (synonymous with torque), including a state in which the two rotating elements are connected so as to rotate integrally, or a state in which the two rotating elements are connected so as to be able to transmit a driving force via one or more transmission members. Such transmission members include various members that transmit rotation at the same speed or with speed change (for example, shafts, gear mechanisms, belts, chains, etc.). Note that the transmission members may include engaging devices (for example, friction engaging devices, meshing type engaging devices, etc.) that selectively transmit rotation and driving force.
[0012] Also, in this specification, "communicating" refers to a state in which two spatial elements are in fluid communication with each other. That is, it refers to a state in which fluid can flow back and forth between the two spatial elements. At this time, the two spatial elements may communicate directly or indirectly (that is, via other spatial elements).
[0013] In this specification, "rotating electrical machine" is used as a concept that includes any of a motor (electric motor), a generator (electric generator), and a motor-generator that performs the functions of both a motor and a generator as necessary. Also, in this specification, regarding the arrangement of two members, "overlapping in a specific direction view" means that when a virtual straight line parallel to the line-of-sight direction is moved in each direction orthogonal to the virtual straight line, there is at least a part of a region where the virtual straight line intersects both of the two members. Also, in this specification, regarding the arrangement of two members, "the arrangement regions in a specific direction overlap" means that at least a part of the arrangement region of one member in a specific direction is included in the arrangement region of the other member in the specific direction.
[0014] FIG. 1 is a schematic top view showing the mounting state of the vehicle drive device 100 in the vehicle VC. FIG. 2 is a cross-sectional view of the vehicle drive device 100. FIG. 2A is a skeleton view showing the vehicle drive device 100.
[0015] As schematically shown in Figure 2A, the vehicle drive unit 100 comprises a rotating electric machine 1, a pair of output members 6 that are driven and connected to a pair of wheels W (see Figure 1), and a transmission mechanism 3 that transmits driving force between the rotating electric machine 1 and the pair of output members 6. The vehicle drive unit 100 further comprises a case 2 that houses the rotating electric machine 1. The case 2 also houses the pair of output members 6 and the transmission mechanism 3. In a modified example, the case 2 may house only one of the pair of output members 6 (for example, the first output member 61). Furthermore, the vehicle drive unit 100 can be applied to any vehicle having a rotating electric machine 1, such as electric vehicles or hybrid vehicles, and the drive system can be any vehicle, such as front-wheel drive or rear-wheel drive. Also, the drive source may be only an engine (internal combustion engine).
[0016] One of a pair of output members 6, the first output member 61, is driven and connected to the first wheel W1, one of a pair of wheels W, and the other of the pair of output members 6, the second output member 62, is driven and connected to the second wheel W2, the other of the pair of wheels W. As shown in Figure 1, the vehicle VC on which the vehicle drive unit 100 is mounted includes a first drive shaft 63 that rotates integrally with the first wheel W1 and a second drive shaft 64 that rotates integrally with the second wheel W2. The first drive shaft 63 is connected to the first wheel W1, for example via a constant velocity joint, and the second drive shaft 64 is connected to the second wheel W2, for example via a constant velocity joint. The first output member 61 is connected to the first drive shaft 63 so as to rotate integrally with the first drive shaft 63, and the second output member 62 is connected to the second drive shaft 64 so as to rotate integrally with the second drive shaft 64. The first output member 61 may be in the form of an intermediate shaft. The first output member 61 is rotatably supported on the second axial side A2 via bearing BR1 relative to the case 2, and on the first axial side A1 via bearing BR2 relative to the case 2. In this embodiment, bearings BR1 and BR2 are ball bearings as an example, but other forms may also be used.
[0017] The vehicle drive unit 100 transmits the output torque of the rotating electric machine 1 to a pair of wheels W via a pair of output members 6, thereby driving the vehicle VC on which the vehicle drive unit 100 is mounted. In other words, the rotating electric machine 1 is the driving force source for the pair of wheels W. The pair of wheels W are a left and right pair of wheels on the vehicle VC (for example, a left and right pair of front wheels, or a left and right pair of rear wheels). The rotating electric machine 1 may be, for example, an AC rotating electric machine driven by a three-phase AC.
[0018] As shown in Figure 2, the rotating electric machine 1 and the pair of output members 6 are arranged on two parallel axes (specifically, a first axis C1 and a second axis C2). Specifically, the rotating electric machine 1 is positioned on the first axis C1, and the pair of output members 6 are positioned on a second axis C2, which is different from the first axis C1. The first axis C1 and the second axis C2 are axes (virtual axes) that are positioned parallel to each other. The transmission mechanism 3 is provided with an output gear (ring gear) 30 that is driven and connected to at least one of the pair of output members 6, coaxially with the pair of output members 6 (i.e., on the second axis C2).
[0019] The rotating electric machine 1 is, for example, an inner rotor type. In the rotating electric machine 1, a rotor 14 that can rotate around the first axis C1 is arranged radially inside the stator 11 (see Figure 2). The stator 11 may be cooled by a water channel on the radially outer side, as shown in Figure 2, or it may be cooled by air cooling.
[0020] The rotor shaft 15 of the rotor 14 is rotatably supported relative to the case 2 via bearing BR3 on the second axial side A2, and via bearing BR4 on the first axial side A1. In this embodiment, bearings BR3 and BR4 are ball bearings as an example, but other forms may be used. In the example shown in Figure 2, the rotor shaft 15 has an axial oil passage 15a and radial ejection holes 15b, and during rotation, centrifugal force can eject oil from the axial oil passage 15a toward the coil end 13 from each of the radial ejection holes 15b.
[0021] The transmission mechanism 3 includes a reduction mechanism 34 in the power transmission path between the rotating electric machine 1 and the output gear 30. The reduction mechanism 34 is optional and may include a reduction mechanism using a counter gear or a reduction mechanism using planetary gears. In this embodiment, as an example, the reduction mechanism 34 includes a planetary gear mechanism and is arranged coaxially with the rotating electric machine 1. The output gear (carrier) 342 of the reduction mechanism 34 meshes radially with the output gear 30 of the differential gear mechanism 5. Such a vehicle drive system 100 can have a compact configuration consisting of two shafts (first shaft C1 and second shaft C2). In a modified example, the vehicle drive system 100 may have three or more shafts.
[0022] The reduction mechanism 34 may be arranged coaxially with the rotating electric machine 1 (i.e., on the first axis C1) in a manner that drives and connects to the rotating electric machine 1. In this embodiment, as an example, the rotor 14 of the rotating electric machine 1 rotates integrally with the input member 16 together with the sun gear 341 of the reduction mechanism 34.
[0023] Furthermore, the transmission mechanism 3 further includes a differential gear mechanism 5. The differential gear mechanism 5 distributes the driving force transmitted from the rotating electric machine 1 to a pair of output members 6. In the example shown in Figure 2, the differential gear mechanism 5 distributes the rotation of the output gear 30 to the first side gear 51 and the second side gear 52. The differential gear mechanism 5 may be arranged coaxially with the pair of output members 6 (i.e., on the second shaft C2). The differential gear mechanism 5 may be a bevel gear type differential gear mechanism, and the output gear 30 may be connected to the differential case portion 50 of the differential gear mechanism 5 so as to rotate integrally with the differential case portion 50.
[0024] Next, the configuration of Case 2 will be explained in detail with reference to Figures 2 and 3.
[0025] Figure 3 is a schematic top view of the vehicle drive unit 100. In Figure 3, the inverter cover member 203 at the top of the inverter case 24 is omitted from the illustration so that the elements arranged inside the inverter case 24 can be seen.
[0026] In this embodiment, as an example, case 2 includes a motor case section 21, a transmission mechanism case section 22, an output shaft case section 23, and an inverter case section 24 in an integrated form. Here, "integrated form" includes forms where the components are integrated with fastening members such as bolts, or forms where they are integrated by integral molding (for example, casting or aluminizing).
[0027] The motor case section 21 forms a motor housing chamber S1 for housing the rotating electric machine 1, the transmission mechanism case section 22 forms a transmission mechanism housing chamber S2 for housing the transmission mechanism 3, the output shaft case section 23 forms an output shaft housing chamber S3 for housing the first output member 61, and the inverter case section 24 forms an inverter housing chamber S4 for housing the inverter device 70. Note that when we say that the motor case section 21 forms the motor housing chamber S1, we mean that the wall section bordering the motor housing chamber S1 forms the motor case section 21. This also applies to the transmission mechanism housing chamber S2, the output shaft case section 23, and the inverter case section 24.
[0028] The motor case portion 21 has a cylindrical shape corresponding to the outer shape of the rotating electric machine 1. However, the motor case portion 21 does not need to have a completely closed cylindrical outer circumference. For example, the motor housing chamber S1 and the output shaft housing chamber S3 may be in communication, in which case a wall portion (partition wall portion) does not need to be formed on the side of the motor case portion 21 facing the output shaft housing chamber S3.
[0029] The transmission mechanism case 22 is provided on the second axial side A2 relative to the motor case 21 and the output shaft case 23. The output shaft case 23 is provided on the X-direction X2 side relative to the motor case 21. The inverter case 24 is provided above the transmission mechanism case 22 and the output shaft case 23. Details of the inverter case 24 will be described later.
[0030] In this embodiment, as an example, the output shaft case portion 23 is included, which allows for more effective protection of the first output member 61 from the external environment (e.g., flying stones) compared to the case where the first output member 61 is located outside the case 2. Furthermore, the clearance that needs to be maintained between the first output member 61 and surrounding components can be reduced. However, in a modified example, the first output member 61 may be located outside the case 2.
[0031] Case 2 may be formed by joining multiple components (case components and cover components). Therefore, one case component forming Case 2 may form two or more case components from among the motor case component 21, the transmission mechanism case component 22, the output shaft case component 23, and the inverter case component 24.
[0032] Furthermore, the motor housing chamber S1, transmission mechanism housing chamber S2, output shaft housing chamber S3, and inverter housing chamber S4 formed by case 2 may be completely isolated from each other, partially connected, or shared in a manner without boundaries. For example, the motor housing chamber S1 and the output shaft housing chamber S3 may be shared in a manner without partition walls separating them. In this case, the rotating electric machine 1 and the first output member 61 will be housed in a common housing chamber formed by case 2 (specifically, the motor housing chamber S1 and the output shaft housing chamber S3). In this embodiment, as an example, since oil is supplied to the motor housing chamber S1, the motor housing chamber S1 and the inverter housing chamber S4 may be separated.
[0033] In the following description, Case 2 is assumed to be formed by joining together a case member 200, a motor cover member 201, a differential cover member 202, and an inverter cover member 203, as an example. The joining method may be fastening with bolts or the like.
[0034] The case member 200 may be formed from a single piece of material (for example, a single piece of material made by die-casting). In this case, the motor housing chamber S1 and the transmission mechanism housing chamber S2 may be separated by a single partition wall 26.
[0035] The case member 200 has an axial opening on the first axial side A1 and an axial opening on the second axial side A2.
[0036] The motor cover member 201 is provided to cover the opening on the first axial side A1 of the case member 200 (i.e., the opening on the first axial side A1 of the motor housing chamber S1). The motor cover member 201 may be formed as a single piece. The motor cover member 201 may be joined to the end face (joint surface) of the first axial side A1 of the case member 200. In this case, the joint surface (matting surface) 221 between the motor cover member 201 and the case member 200 may extend in a plane perpendicular to the axial direction.
[0037] The differential cover member 202 is provided to cover the axial second side A2 opening of the case member 200 (i.e., the axial second side A2 opening of the transmission mechanism housing chamber S2). The differential cover member 202 may be formed as a single piece. The differential cover member 202 may be joined to the end face (joint surface) of the axial second side A2 of the case member 200. In this case, the joint surface (matting surface) 222 between the differential cover member 202 and the case member 200 may extend in a plane perpendicular to the axial direction.
[0038] The inverter cover member 203 is provided to cover the opening of the inverter housing chamber S4 in the case member 200. The inverter cover member 203 may be formed as a single piece.
[0039] The inverter device 70 may be in the form of a module and may be fixed to the wall portion forming the inverter case portion 24 by bolts or the like.
[0040] As described above, the inverter device 70 is housed in the inverter housing chamber S4 of the inverter case 24. The inverter device 70 receives power from the battery BA (see Figure 1) and supplies power to the rotating electric machine 1. The battery BA is optional, but may be a high-voltage battery with a relatively high rated voltage, and may be a lithium-ion battery or the like. The inverter device 70 mainly includes a power module PM, a smoothing capacitor CM, and a busbar structure 72. The inverter device 70 may further include a control board (not shown) on which a control device for controlling the inverter circuit is mounted. The busbar structure 72 is placed between the rotating electric machine 1 and the power module PM and electrically connects the two.
[0041] In this embodiment, as an example, the inverter case 24 is arranged so as to overlap the first axis C1 and the second axis C2 when viewed from above (viewed in the second direction Y, the same applies hereinafter).
[0042] The inverter housing chamber S4 includes a first housing section S41, a second housing section S42, and a third housing section S43. In a top view, the inverter housing chamber S4 has an L-shape, as shown in Figure 3. Specifically, if the X-direction center is defined as the space between the first axis C1 and the second axis C2 in the X-direction, the inverter housing chamber S4 extends on both sides in the X-direction with respect to the X-direction center, straddling the X-direction center. Also, if the A-direction center is defined as the space between the rotating electric machine 1 and the reduction mechanism 34 in the A-direction, the inverter housing chamber S4 extends on both sides in the A-direction center, straddling the A-direction center on the second side X2 of the first direction. On the other hand, in the first side X1 of the first direction, the inverter housing chamber S4 extends only on the axial second side A2 beyond the A-direction center.
[0043] More specifically, the first housing section S41, the second housing section S42, and the third housing section S43 are arranged in an L-shape overall when viewed from above, as shown in Figure 3. In this arrangement, the first housing section S41 overlaps the first axis C1 (i.e., the reduction mechanism 34) on the second axial side A2 when viewed from above, and overlaps the rotating electric machine 1 when viewed in the axial direction A. The second housing section S42 overlaps the second axis C2 when viewed from above, and overlaps the rotating electric machine 1 when viewed in the first direction X. The third housing section S43 is adjacent to the first housing section S41 and the second housing section S42, and overlaps the second axis C2 when viewed from above. The third housing section S43 may be integrally connected to the first housing section S41 and the second housing section S42.
[0044] The first housing section S41, the second housing section S42, and the third housing section S43 are positioned above a plane (not shown) that includes the first axis C1, which is the axis of rotation of the rotating electric machine 1, and the second axis C2, which is the axis of the output member 6. In this embodiment, as an example, as described above, the offset amount in the second direction Y between the central axis of the output gear 30 (i.e., the second axis C2) and the central axis of the rotating electric machine 1 (i.e., the first axis C1) is set to be relatively small, so the plane (not shown) that includes the first axis C1 and the second axis C2 is a plane close to the horizontal plane. However, in modified examples, the first axis C1 and the second axis C2 may be significantly offset in the vertical direction.
[0045] Furthermore, the busbar structure 72, a component of the inverter device 70, may be placed in the first housing section S41, the smoothing capacitor CM may be placed in the second housing section S42, and the power module PM may be placed in the third housing section S43. In this case, the busbar structure 72 and the power module PM are adjacent in the first direction X, and the power module PM and the smoothing capacitor CM are adjacent in the axial direction A. The boundaries of the first housing section S41, the second housing section S42, and the third housing section S43 do not need to be strict; for example, a part of the first axial side A1 of the power module PM may be placed in the second housing section S42, or a part of the first axial side X1 of the power module PM may be placed in the first housing section S41.
[0046] In this description, a specific arrangement of components in the inverter housing S4 is explained with reference to Figure 3. However, the arrangement of power modules PM and other components is arbitrary and not limited to the arrangement shown in Figure 3. Furthermore, in the modified example, the inverter case 24 itself may be omitted.
[0047] Next, the characteristic configuration of this embodiment will be described with reference to Figure 4 and subsequent figures.
[0048] Figure 4 is a schematic side view of the vehicle drive unit 100 according to this embodiment, viewed from the axial second side A2. Figure 4 shows the differential cover member 202 removed. Figure 5 is a schematic side view of the differential cover member 202, viewed from the A1 side.
[0049] As described above, the transmission mechanism housing chamber S2 and the output shaft housing chamber S3 overlap the second shaft C2 when viewed from above and are adjacent to each other in the axial direction. Furthermore, since the transmission mechanism housing chamber S2 extends in the X direction in a manner that accommodates the reduction mechanism 34 and the differential gear mechanism 5, the transmission mechanism housing chamber S2 and the output shaft housing chamber S3 extend in an L-shape when viewed from above. Hereafter, the portion of the transmission mechanism housing chamber S2 that accommodates the reduction mechanism 34 will also be referred to as the "reduction mechanism housing chamber S21," and the portion that accommodates the differential gear mechanism 5 will also be referred to as the "differential gear housing chamber S22."
[0050] In this embodiment, oil is circulated within the vehicle drive unit 100 by a lubrication method (natural lubrication method) in which oil is stirred up by the rotation of gears, rather than by a so-called forced lubrication method using an oil pump (mechanical or electric oil pump). However, in modified cases, an oil pump may be used in combination for some lubrication and / or cooling.
[0051] Specifically, in this embodiment, a lubrication method is employed in which the oil accumulated in the lower part of the transmission mechanism housing chamber S2 is stirred up by the rotation of the output gear 30 (so-called differential ring) of the differential gear mechanism 5 to lubricate various objects.
[0052] In this embodiment, a catch tank 920 is provided in the transmission mechanism housing chamber S2, as shown in Figures 4 and 5.
[0053] As shown in Figure 4, the catch tank 920 extends radially outward from the axial wall portion 9201 around the reduction mechanism 34 in the reduction mechanism housing chamber S21 and has an inlet 921 at a position capable of capturing oil scraped up by the rotation of the output gear 30. The catch tank 920 also has an outlet 922 at its lower part that opens into the differential gear housing chamber S22. In this case, the axial second side A2 end of the return passage 292 (the opening on the reduction mechanism housing chamber S21 side) may be provided near the outlet 922. This makes it possible to return the oil used to cool the coil end 13 in the space S11 to the lower part of the differential gear housing chamber S22 (the oil reservoir in which the output gear 30 is immersed) relatively quickly via the lower part of the catch tank 920. The catch tank 920 may also be connected to the axial oil passage 15a of the rotor shaft 15 to supply oil to the axial oil passage 15a of the rotor shaft 15.
[0054] Furthermore, the return channel 292 may have its axial first side A1 end communicating with the space S11 of the motor housing chamber S1, and its axial second side A2 end communicating with the lower part of the transmission mechanism housing chamber S2 (the lower part of the catch tank 920).
[0055] The oil churned up by the rotation of the output gear 30 of the differential gear mechanism 5 is introduced into the axial oil passage 15a of the rotor shaft 15 via the catch tank 920. Specifically, the catch tank 920 is provided with a communication port 75 at its top. The communication port 75 is the radially outer opening of the radial communication passage 74, and the radially inner end of the communication passage 74 is connected to the axial oil passage 16a of the input member 16. In this case, the oil churned up by the rotation of the output gear 30 of the differential gear mechanism 5 enters the communication passage 74 from the communication port 75 of the catch tank 920, and is then supplied to the axial oil passage 15a of the rotor shaft 15 via the axial oil passage 16a. The oil supplied to the axial oil passage 15a is used for lubrication of the reduction mechanism 34, etc. Note that the method of supplying oil from the catch tank 920 to the axial oil passage 15a is arbitrary, and other routes may be used.
[0056] In this way, according to this embodiment, by adopting such a natural lubrication method in the vehicle drive unit 100, it is possible to reduce costs and size by eliminating the oil pump.
[0057] Figure 6 schematically shows the state when Case 2 (and consequently the shaft oil passages 16a and 15a) are tilted in the left-right direction depending on the left-right tilt of the vehicle VC, and is an enlarged view of Q6 in Figure 2. In Figure 6, the flow of oil from the catch tank 920 is schematically shown as follows: the flow through the connecting passage 74 is indicated by arrow R60, the flow through the shaft oil passage 16a is indicated by arrow R62, and the flow of oil used for lubrication of the reduction mechanism 34, etc., is indicated by arrow R64.
[0058] Incidentally, as mentioned in the section on "Problems the Invention Aims to Solve," when the case 2 of the vehicle drive unit 100 tilts according to the orientation of the vehicle drive unit 100, the oil passages such as the shaft oil passage 16a also tilt accordingly. In this regard, in a configuration like this embodiment, where the oil pump is eliminated and a catch tank 920 is provided, depending on the orientation of the vehicle VC, the oil in the catch tank 920 may have difficulty flowing through the left-right inclined oil passages (for example, the shaft oil passage 16a) relative to the horizontal plane (the flow rate may decrease significantly or become zero). This is because the oil in the catch tank 920 is supplied to the shaft oil passage 16a based on its own weight or head pressure (hydrostatic head pressure), and the head pressure of the oil in the shaft oil passage 16a may become higher than the head pressure of the oil in the catch tank 920 due to the inclination.
[0059] Therefore, in this embodiment, as will be explained in detail below, an oil supply system is provided that does not use an oil pump but can pump oil in a manner similar to that of an oil pump, thereby resolving the above-mentioned problems.
[0060] Specifically, in this embodiment, the transmission mechanism housing chamber S2 is provided with a pressurized oil chamber 940, as shown in Figures 4 and 5. Unlike the catch tank 920, the pressurized oil chamber 940 has a relatively small volume. The pressurized oil chamber 940 may be closed off on the axial second side A2 by the differential cover member 202, similar to the catch tank 920.
[0061] In this embodiment, the pressurized oil chamber 940 may be positioned such that its inlet 941 is slightly radially outward from the outer edge of the output gear 30, as shown in Figures 4 and 5. The pressurized oil chamber 940 is provided in a portion of the entire circumference around the output gear 30. In this case, the pressurized oil chamber 940 preferably extends over a circumferential range of 1 / 3 or less of the entire circumference around the output gear 30, more preferably over a circumferential range of 1 / 4 or less. In this case, a pressurized oil chamber 940 with a relatively small volume can be formed by utilizing dead space, and the hydraulic pressure required for pressurization, which will be described later, can be efficiently increased.
[0062] Preferably, the pressurized oil chamber 940 is positioned such that its inlet 941 is slightly radially outward from the outer edge of the output gear 30. In this case, the oil scooped up by the output gear 30 can be directly introduced into the inlet 941 of the pressurized oil chamber 940, and the hydraulic pressure required for pressurization, which will be described later, can be efficiently increased.
[0063] A pumping oil passage 950 is connected to the pumping oil chamber 940. Details of the pumping oil passage 950 will be described later. In this embodiment, the oil in the pumping oil chamber 940 is pumped to the pumping oil passage 950 based on the hydraulic pressure generated when new oil directly enters the pumping oil chamber 940. The opening area of the pumping oil passage 950 on the pumping oil chamber 940 side is significantly smaller than the area of the extended range of the pumping oil chamber 940 when viewed in the axial direction.
[0064] Figure 7 is a schematic diagram illustrating the principle of hydraulic pressure generation for the oil in the pressurized oil chamber 940, and is an enlarged view of Q7 in Figure 4. In Figure 7, the oil that enters the pressurized oil chamber 940 from the oil scooped up from the output gear 30 is schematically shown in the hatched area labeled 92, and the oil inside the pressurized oil chamber 940 is schematically shown in the hatched area labeled 90.
[0065] In this embodiment, as described above, oil scooped up from the output gear 30 enters the pressurized oil chamber 940, and the amount of oil flowing in increases with the rotational speed of the output gear 30. Since the pressurized oil chamber 940 has a relatively small capacity as described above, when the rotational speed of the output gear 30 exceeds a certain rotational speed that is significantly greater than 0 (an example of a second rotational speed), the pressurized oil chamber 940 becomes filled with oil 90, as schematically shown in Figure 7. That is, the pressurized oil chamber 940 is filled with oil 90 in a manner that substantially does not contain air. Note that the specific rotational speed may vary depending on the situation and individual, but it can be adjusted to the desired value by designing the capacity of the pressurized oil chamber 940, etc. When this filled state is reached, the oil that enters the pressurized oil chamber 940 from the oil scooped up from the output gear 30 can impart hydraulic pressure (see pressure P70 in Figure 7) to the oil in the pressurized oil chamber 940. In other words, the oil in the pressurized oil chamber 940 is pressurized based on the hydraulic pressure generated when new oil enters the pressurized oil chamber 940 directly. As a result, the oil in the pressurized oil chamber 940 is pressurized and sent to the pressurized oil passage 950. Here, "oil entering directly" into one oil passage means that oil enters that oil passage without passing through other oil passages.
[0066] In this way, according to this embodiment, without using an oil pump, the oil in the pressurized oil chamber 940 can be pressurized and sent to the pressurized oil passage 950 based on the hydraulic pressure generated when new oil enters the pressurized oil chamber 940 directly. As a result, even if the vehicle tilts as described above (for example, tilting in the left-right direction), the supply (flow) of oil through the pressurized oil passage 950 can be maintained.
[0067] In this embodiment, as shown in Figure 4, the inlet 941 of the pressurized oil chamber 940 is angled downwards. Therefore, when the rotational speed of the output gear 30 is 0 or close to 0 (an example of the first rotational speed), substantially all of the oil in the pressurized oil chamber 940 returns to the lower part of the transmission mechanism housing chamber S2 by its own weight.
[0068] Next, a preferred example of the pressurized oil passage 950 will be described with reference to Figure 8 and subsequent figures.
[0069] Figure 8 is an explanatory diagram of the oil flow through the pressurized oil passage 950, and Figure 2 schematically shows the corresponding oil flows with arrows. Figure 8 also shows the oil flow from the catch tank 920, which was outlined with reference to Figure 6. Figures 9 to 12 are explanatory diagrams of the pressurized oil passage 950, and Figure 9 is a schematic side view of the vehicle drive unit 100 as seen from the A1 side. Figure 9 shows the motor cover member 201 removed. Figure 10 is a schematic side view of the vehicle drive unit 100 as seen from the side perpendicular to the axial direction A, Figure 11 is a schematic side view of the motor cover member 201 as seen from the axial second side A2, and Figure 12 is a schematic side view of the motor cover member 201 as seen from the axial first side A1.
[0070] In this embodiment, the pressurized oil passage 950 communicates with the axial oil passage 15a of the rotor shaft 15 from the first axial side A1. As described above, the communication passage 74 from the catch tank 920 communicates with the axial oil passage 15a of the rotor shaft 15 from the second axial side A2 via the axial oil passage 16a of the input member 16. This makes it possible to supply oil to the axial oil passage 15a of the rotor shaft 15 from both sides A in the axial direction, effectively improving the stability of the oil supply to the axial oil passage 15a of the rotor shaft 15.
[0071] Specifically, the pressurized oil passage 950 includes, in order from the pressurized oil chamber 940, mainly an axial oil passage 951 and a radial oil passage 952.
[0072] The axial oil passage 951 is formed in the case member 200 and extends in the axial direction. The axial oil passage 951 has its axial second side A2 end connected to the pressurized oil chamber 940 and its axial first side A1 end connected to the radial oil passage 952. In the example shown in Figure 10, the axial oil passage 951 extends linearly substantially parallel to the axial direction A, but it may have a bend. Furthermore, part or all of the axial oil passage 951 may be formed by a tubular member that can be placed inside the motor housing chamber S1.
[0073] As shown in Figures 11 and 12, the radial oil passage 952 is formed in the motor cover member 201 and extends radially. The radial outer end of the radial oil passage 952 is connected to the axial oil passage 951, and the radial inner end is connected to the axial oil passage 15a. In the example shown in Figures 11 and 12, the radial oil passage 952 extends linearly substantially parallel to the radial direction, but it may have a bent portion. Furthermore, part or all of the radial oil passage 952 may be formed by a tubular member that can be placed in the motor housing chamber S1. The radial oil passage 952 may also be formed to pass through an oil cooler (not shown) which may be provided in the motor cover member 201.
[0074] Thus, according to this embodiment, the oil scooped up by the output gear 30 can be stably supplied to the axial oil passage 15a via two supply systems without the need for an oil pump.
[0075] Specifically, as shown in Figure 8, as described above, the oil churned up by the rotation of the output gear 30 of the differential gear mechanism 5 is introduced into the axial oil passage 15a of the rotor shaft 15 from the axial second side A2 via the catch tank 920, the communication passage 74, and the axial oil passage 16a of the input member 16 (see arrows R60 and R62). In addition, the oil churned up by the rotation of the output gear 30 of the differential gear mechanism 5 is introduced into the axial oil passage 15a of the rotor shaft 15 from the axial first side A1 via the pressurized oil chamber 940 and the pressurized oil passage 950 (see arrow R80). The oil supplied to the axial oil passage 15a is ejected from the ejection hole 15b to the coil end 13 of the rotating electric machine 1 while passing through the axial oil passage 15a (see arrow R82) (see arrow R84). This allows the coil end 13 to be efficiently cooled by the oil churned up by the rotation of the output gear 30 of the differential gear mechanism 5. The oil sprayed onto the coil end 13 in space S12 of the motor housing chamber S1 lubricates bearings BR3, BR4, etc. (see arrow R86) and is returned from space S12 to the transmission mechanism housing chamber S2 via the end of the return passage 290 located below the second shaft C2 (the end on the axial A2 side) (see Figure 4). Similarly, the oil sprayed onto the coil end 13 in space S11 of the motor housing chamber S1 is returned from space S11 to the transmission mechanism housing chamber S2 via the end of the return passage 292 located below the second shaft C2 (the end on the axial A2 side) (see Figure 4). The oil returned to the transmission mechanism housing chamber S2 in this way is then returned to the differential gear housing chamber S22 from the outlet 922 in the catch tank 920 located below the second shaft C2. This allows the material to be lifted again by the rotation of the output gear 30 of the differential gear mechanism 5.
[0076] In this embodiment, two return channels 290 and 292 are provided, but the number and configuration of the return channels are arbitrary.
[0077] Although each embodiment has been described in detail above, the invention is not limited to any particular embodiment, and various modifications and changes are possible within the scope described in the claims. Furthermore, it is possible to combine all or more of the components of the embodiments described above.
[0078] For example, in the embodiment described above, the pressurized oil chamber 940 functions based on the oil scooped up by the output gear 30 of the differential gear mechanism 5, but it is not limited to this. That is, the gear that scoops up the oil may be a gear other than the output gear 30 of the differential gear mechanism 5, and in this case as well, the pressurized oil chamber 940 may be arranged with respect to that gear (the gear that scoops up the oil) in the same manner as with respect to the output gear 30.
[0079] Furthermore, in the above-described embodiment, the element that scoops up oil into the pressurized oil chamber 940 is the teeth on the outer circumference of the output gear 30, but it is not limited to this. That is, the element that scoops up oil into the pressurized oil chamber 940 does not have to be the teeth of a gear, but may be other elements. For example, fins may be provided on the outer circumference of a rotating body that rotates integrally with a part of the reduction mechanism 34 (e.g., a carrier), and the oil may be scooped up by the fins. In this case, an oil chamber such as the pressurized oil chamber 940 may be arranged so that it contains the oil that is scooped up by the fins.
[0080] Furthermore, in the embodiments described above, the power source of the vehicle is a rotating electric machine 1, but it is not limited to this. For example, the power source of the vehicle may include an engine (internal combustion engine) instead of or in addition to the rotating electric machine 1.
[0081] Furthermore, in the embodiments described above, the destination of the oil discharged from the pressurized oil chamber 940 includes the axial oil passage 15a extending in the left-right direction of the vehicle, but is not limited thereto. For example, the destination of the oil discharged from the pressurized oil chamber 940 can be arbitrary and may be an oil passage extending in a direction other than the left-right direction of the vehicle. Also, the destination of the oil discharged from the pressurized oil chamber 940 is preferably an oil passage extending in a substantially horizontal plane, but is not limited thereto. [Explanation of symbols]
[0082] 100...Vehicle drive unit, 1...Rotating electric machine (power source), 2...Case, 3...Transmission mechanism, 15...Rotor shaft, 15a...Axle oil passage, 30...Output gear (rotating body, gear), 920...Catch tank (second oil chamber), 74...Connecting passage (second oil passage), 940...Pressurized oil chamber (first oil chamber), 950...Pressurized oil passage (first oil passage), S2...Transmission mechanism housing chamber (housing chamber)
Claims
1. A case that forms a containment chamber through which oil flows, A power transmission mechanism is provided in the aforementioned storage chamber and capable of transmitting power from a power source to the wheels, The case comprises an oil passage structure formed in at least a portion thereof, The power transmission mechanism includes a rotating body that rotates around an axis during power transmission. The rotating body has an outer circumference that can scrape up the oil that accumulates below the containment chamber by rotation, The oil passage structure includes a first oil chamber into which oil is scooped up by the rotation of the rotating body, and a first oil passage communicating with the first oil chamber. A vehicle drive system in which the oil in the first oil chamber is pumped to the first oil passage based on the hydraulic pressure generated when new oil enters the first oil chamber due to the rotation of the rotating body.
2. The vehicle drive device according to claim 1, wherein the rotating body includes a gear having teeth on its outer circumference.
3. The vehicle drive device according to claim 1, wherein when the rotational speed of the rotating body exceeds a certain rotational speed, the oil in the first oil chamber is pumped to the first oil passage based on the hydraulic pressure generated when it enters the first oil chamber.
4. The vehicle drive device according to claim 1, wherein when the rotational speed of the rotating body is a first rotational speed of 0 or more, the oil in the first oil chamber returns to the lower part of the storage chamber by its own weight, and when the rotational speed of the rotating body is a second rotational speed higher than the first rotational speed, the oil in the first oil chamber is pumped to the first oil passage based on the hydraulic pressure generated when it enters the first oil chamber.
5. The vehicle drive device according to claim 1, wherein the first oil chamber extends over a circumferential range of no more than 1 / 4 of the entire circumference around the rotating body.
6. The power source includes a rotating electric machine located in the housing chamber. The vehicle drive device according to claim 1, wherein the first oil passage communicates with the axial oil passage of the rotor shaft of the rotating electric machine.
7. The oil passage structure further includes a second oil chamber into which oil is drawn up by the rotation of the rotating body, and a second oil passage communicating with the second oil chamber. The vehicle drive device according to any one of claims 1 to 6, wherein the oil in the second oil chamber is supplied to the second oil passage based on its own weight or the head pressure in the second oil chamber.
8. The vehicle drive device according to claim 7, wherein the first oil chamber has a smaller volume than the second oil chamber.
9. The power source includes a rotating electric machine located in the housing chamber. The first oil passage communicates with the axial oil passage of the rotor of the rotating electric machine from one side in the axial direction. The vehicle drive device according to claim 7, wherein the second oil passage communicates with the axial oil passage of the rotor of the rotating electric machine from the other axial side.